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Reconstruction of Metal Roofs Wind Pressure Using POD-LSF Algorithm with Sparse Data

  • Beihang University

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Metal roof envelope systems are critical components of large-scale structures, relying on sensors mounted on their surfaces to reconstruct wind pressure for essential fatigue monitoring. Due to the extensive structural coverage and large surface area involved, sensor deployment is often sparse, necessitating effective methods for reconstructing wind pressure fields from limited data. This paper proposes a Proper Orthogonal Decomposition-Least Squares Fitting (POD-LSF) algorithm for wind pressure reconstruction based on discrete measurement data. The method first employs POD in an offline phase to reduce the dimensionality of the wind pressure field data, significantly decreasing computational demands and enhancing reconstruction speed. Subsequently in the online phase, the least squares fitting technique (LSF) is applied to integrate information from the discrete measurement points, thereby improving the accuracy and stability of the reconstructed wind pressure distribution. This approach enables rapid and precise reconstruction of the wind pressure field even under conditions of sparse sensor placement. The proposed algorithm has been validated on a typical sloped roof structure, achieving an average relative error of 8.95% in wind pressure reconstruction and effectively capturing the overall wind pressure distribution across the roof surface.

Original languageEnglish
Title of host publication2025 IEEE 20th Conference on Industrial Electronics and Applications, ICIEA 2025
PublisherInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronic)9798331524036
DOIs
StatePublished - 2025
Event20th IEEE Conference on Industrial Electronics and Applications, ICIEA 2025 - Yantai, China
Duration: 3 Aug 20256 Aug 2025

Publication series

Name2025 IEEE 20th Conference on Industrial Electronics and Applications, ICIEA 2025

Conference

Conference20th IEEE Conference on Industrial Electronics and Applications, ICIEA 2025
Country/TerritoryChina
CityYantai
Period3/08/256/08/25

Keywords

  • least squares fitting
  • proper orthogonal decomposition
  • sensor data reconstruction

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